Cargando…

Proton Irradiation Effects on Hardness and the Volta Potential of Welding 308L Duplex Stainless Steel

308L welding duplex stainless steel has been irradiated at 360 °C with 2 MeV protons, corresponding to a dose of 3 dpa at the maximum depth of 20 μm. Microhardness of the δ-ferrite and austenite phases was studied before and after proton irradiation using in situ nanomechanical test system (ISNTS)....

Descripción completa

Detalles Bibliográficos
Autores principales: Jiang, Baolong, Peng, Qunjia, Jiao, Zhijie, Volinsky, Alex A., Qiao, Lijie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6356573/
https://www.ncbi.nlm.nih.gov/pubmed/30585232
http://dx.doi.org/10.3390/mi10010011
_version_ 1783391576123244544
author Jiang, Baolong
Peng, Qunjia
Jiao, Zhijie
Volinsky, Alex A.
Qiao, Lijie
author_facet Jiang, Baolong
Peng, Qunjia
Jiao, Zhijie
Volinsky, Alex A.
Qiao, Lijie
author_sort Jiang, Baolong
collection PubMed
description 308L welding duplex stainless steel has been irradiated at 360 °C with 2 MeV protons, corresponding to a dose of 3 dpa at the maximum depth of 20 μm. Microhardness of the δ-ferrite and austenite phases was studied before and after proton irradiation using in situ nanomechanical test system (ISNTS). The locations of the phases for indentations placement were obtained by scanning probe microscopy from the ISNTS. The hardness of the δ-ferrite had a close relationship with the vacancy distribution obtained from the Stopping and Range of Ions in Matter (SRIM) Monte Carlo simulation code. However, the hardness of the austenite phase in the maximum damage region (17–20 μm depth) from the SRIM simulation was decreasing sharply, and a hardness transition region (>20 μm and <55 μm depth) was found between the maximum damage region (17–20 μm depth) and the unirradiated region (>20 μm depth). However, the δ-ferrite hardness behavior was different. A hardness of the two phases increased on the irradiated surface and the interior due to different hardening mechanisms in the austenite and δ-ferrite phases after a long time high-temperature irradiation. A transition region (>20 μm and <55 μm depth) of the Volta potential was also found, which was caused by the deeper transfer of implanted protons measured by scanning Kelvin probe force microscopy.
format Online
Article
Text
id pubmed-6356573
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-63565732019-02-05 Proton Irradiation Effects on Hardness and the Volta Potential of Welding 308L Duplex Stainless Steel Jiang, Baolong Peng, Qunjia Jiao, Zhijie Volinsky, Alex A. Qiao, Lijie Micromachines (Basel) Article 308L welding duplex stainless steel has been irradiated at 360 °C with 2 MeV protons, corresponding to a dose of 3 dpa at the maximum depth of 20 μm. Microhardness of the δ-ferrite and austenite phases was studied before and after proton irradiation using in situ nanomechanical test system (ISNTS). The locations of the phases for indentations placement were obtained by scanning probe microscopy from the ISNTS. The hardness of the δ-ferrite had a close relationship with the vacancy distribution obtained from the Stopping and Range of Ions in Matter (SRIM) Monte Carlo simulation code. However, the hardness of the austenite phase in the maximum damage region (17–20 μm depth) from the SRIM simulation was decreasing sharply, and a hardness transition region (>20 μm and <55 μm depth) was found between the maximum damage region (17–20 μm depth) and the unirradiated region (>20 μm depth). However, the δ-ferrite hardness behavior was different. A hardness of the two phases increased on the irradiated surface and the interior due to different hardening mechanisms in the austenite and δ-ferrite phases after a long time high-temperature irradiation. A transition region (>20 μm and <55 μm depth) of the Volta potential was also found, which was caused by the deeper transfer of implanted protons measured by scanning Kelvin probe force microscopy. MDPI 2018-12-25 /pmc/articles/PMC6356573/ /pubmed/30585232 http://dx.doi.org/10.3390/mi10010011 Text en © 2018 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Jiang, Baolong
Peng, Qunjia
Jiao, Zhijie
Volinsky, Alex A.
Qiao, Lijie
Proton Irradiation Effects on Hardness and the Volta Potential of Welding 308L Duplex Stainless Steel
title Proton Irradiation Effects on Hardness and the Volta Potential of Welding 308L Duplex Stainless Steel
title_full Proton Irradiation Effects on Hardness and the Volta Potential of Welding 308L Duplex Stainless Steel
title_fullStr Proton Irradiation Effects on Hardness and the Volta Potential of Welding 308L Duplex Stainless Steel
title_full_unstemmed Proton Irradiation Effects on Hardness and the Volta Potential of Welding 308L Duplex Stainless Steel
title_short Proton Irradiation Effects on Hardness and the Volta Potential of Welding 308L Duplex Stainless Steel
title_sort proton irradiation effects on hardness and the volta potential of welding 308l duplex stainless steel
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6356573/
https://www.ncbi.nlm.nih.gov/pubmed/30585232
http://dx.doi.org/10.3390/mi10010011
work_keys_str_mv AT jiangbaolong protonirradiationeffectsonhardnessandthevoltapotentialofwelding308lduplexstainlesssteel
AT pengqunjia protonirradiationeffectsonhardnessandthevoltapotentialofwelding308lduplexstainlesssteel
AT jiaozhijie protonirradiationeffectsonhardnessandthevoltapotentialofwelding308lduplexstainlesssteel
AT volinskyalexa protonirradiationeffectsonhardnessandthevoltapotentialofwelding308lduplexstainlesssteel
AT qiaolijie protonirradiationeffectsonhardnessandthevoltapotentialofwelding308lduplexstainlesssteel